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Multi-Layer Feature Based Shoeprint Verification Algorithm for Camera Sensor Images

机译:基于多层特征的相机传感器图像鞋印验证算法

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As a kind of forensic evidence, shoeprints have been treated as important as fingerprint and DNA evidence in forensic investigations. Shoeprint verification is used to determine whether two shoeprints could, or could not, have been made by the same shoe. Successful shoeprint verification has tremendous evidentiary value, and the result can link a suspect to a crime, or even link crime scenes to each other. In forensic practice, shoeprint verification is manually performed by forensic experts; however, it is too dependent on experts’ experience. This is a meaningful and challenging problem, and there are few attempts to tackle it in the literatures. In this paper, we propose a multi-layer feature-based method to conduct shoeprint verification automatically. Firstly, we extracted multi-layer features; and then conducted multi-layer feature matching and calculated the total similarity score. Finally, we drew a verification conclusion according to the total similarity score. We conducted extensive experiments to evaluate the effectiveness of the proposed method on two shoeprint datasets. Experimental results showed that the proposed method achieved good performance with an equal error rate (EER) of 3.2% on the MUES-SV1KR2R dataset and an EER of 10.9% on the MUES-SV2HS2S dataset.
机译:作为一种法医证据,在法医调查中,鞋印与指纹和DNA证据一样重要。鞋印验证用于确定同一只鞋是否可以制作两个鞋印。成功的鞋印验证具有巨大的证据价值,其结果可以将犯罪嫌疑人与犯罪联系起来,甚至可以将犯罪现场相互联系起来。在法医实践中,鞋印验证由法医专家手动执行;但是,它过于依赖专家的经验。这是一个有意义且具有挑战性的问题,在文献中几乎没有尝试解决它。在本文中,我们提出了一种基于多层特征的方法来自动进行鞋印验证。首先,我们提取了多层特征;然后进行多层特征匹配,计算出总体相似度得分。最后,我们根据总体相似度得分得出验证结论。我们进行了广泛的实验,以评估该方法在两个鞋印数据集上的有效性。实验结果表明,该方法取得了良好的性能,在MUES-SV1KR2R数据集上的等误率(EER)为3.2%,在MUES-SV2HS2S数据集上的等误率为10.9%。

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